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RNA–DNA hybrid nano-materials for highly efficient and long lasting RNA interference effect

In attempts to effectively improve RNAi function, we herein report a new RNAi approach using X-shaped RDNA and Dgel (RNA interfering DNA hydrogel, Ri-Dgel). X-shaped RDNA is a 4 branched nanostructure which was composed of three dsDNA branches and one dsRNA branch, and the structure was made by anne...

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Autores principales: Kim, Joung Sug, Park, Junghyun, Choi, Jang Hyeon, Kang, Seungjae, Park, Nokyoung
Formato: Online Artículo Texto
Lenguaje:English
Publicado: The Royal Society of Chemistry 2023
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9854246/
https://www.ncbi.nlm.nih.gov/pubmed/36756454
http://dx.doi.org/10.1039/d2ra06249f
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author Kim, Joung Sug
Park, Junghyun
Choi, Jang Hyeon
Kang, Seungjae
Park, Nokyoung
author_facet Kim, Joung Sug
Park, Junghyun
Choi, Jang Hyeon
Kang, Seungjae
Park, Nokyoung
author_sort Kim, Joung Sug
collection PubMed
description In attempts to effectively improve RNAi function, we herein report a new RNAi approach using X-shaped RDNA and Dgel (RNA interfering DNA hydrogel, Ri-Dgel). X-shaped RDNA is a 4 branched nanostructure which was composed of three dsDNA branches and one dsRNA branch, and the structure was made by annealing partially complementary ssDNAs and chimeric RNA–DNA oligonucleotides. Ri-Dgel was synthesized through the ligation of the X-shaped RDNAs using their palindromic sticky ends. In MDCK/GFP cells transfected with 1 μM of each format of siRNA, Ri-Dgel and X-RDNA, the intensity of GFP fluorescence was significantly reduced by 65% and 56%, respectively, while dsRNA which is a conventional siRNA format showed a relatively weak reduction intensity of 7% compared with a negative control. We also observed the decreased intensity of GFP fluorescence by approximately 59% in MDA-MB-231/GFP cells transfected with 5 nM Ri-Dgel. Furthermore, the Ri-Dgel showed persistent RNAi efficiency up to 6 days from the treatment. The use of Ri-Dgel to trigger RNAi resulted in enhanced efficacy and longer duration at lower concentration compared to traditional dsRNA implying the nanostructured DNA–RNA hybrid materials have great potential as a platform technology for RNAi-based therapy.
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spelling pubmed-98542462023-02-07 RNA–DNA hybrid nano-materials for highly efficient and long lasting RNA interference effect Kim, Joung Sug Park, Junghyun Choi, Jang Hyeon Kang, Seungjae Park, Nokyoung RSC Adv Chemistry In attempts to effectively improve RNAi function, we herein report a new RNAi approach using X-shaped RDNA and Dgel (RNA interfering DNA hydrogel, Ri-Dgel). X-shaped RDNA is a 4 branched nanostructure which was composed of three dsDNA branches and one dsRNA branch, and the structure was made by annealing partially complementary ssDNAs and chimeric RNA–DNA oligonucleotides. Ri-Dgel was synthesized through the ligation of the X-shaped RDNAs using their palindromic sticky ends. In MDCK/GFP cells transfected with 1 μM of each format of siRNA, Ri-Dgel and X-RDNA, the intensity of GFP fluorescence was significantly reduced by 65% and 56%, respectively, while dsRNA which is a conventional siRNA format showed a relatively weak reduction intensity of 7% compared with a negative control. We also observed the decreased intensity of GFP fluorescence by approximately 59% in MDA-MB-231/GFP cells transfected with 5 nM Ri-Dgel. Furthermore, the Ri-Dgel showed persistent RNAi efficiency up to 6 days from the treatment. The use of Ri-Dgel to trigger RNAi resulted in enhanced efficacy and longer duration at lower concentration compared to traditional dsRNA implying the nanostructured DNA–RNA hybrid materials have great potential as a platform technology for RNAi-based therapy. The Royal Society of Chemistry 2023-01-20 /pmc/articles/PMC9854246/ /pubmed/36756454 http://dx.doi.org/10.1039/d2ra06249f Text en This journal is © The Royal Society of Chemistry https://creativecommons.org/licenses/by-nc/3.0/
spellingShingle Chemistry
Kim, Joung Sug
Park, Junghyun
Choi, Jang Hyeon
Kang, Seungjae
Park, Nokyoung
RNA–DNA hybrid nano-materials for highly efficient and long lasting RNA interference effect
title RNA–DNA hybrid nano-materials for highly efficient and long lasting RNA interference effect
title_full RNA–DNA hybrid nano-materials for highly efficient and long lasting RNA interference effect
title_fullStr RNA–DNA hybrid nano-materials for highly efficient and long lasting RNA interference effect
title_full_unstemmed RNA–DNA hybrid nano-materials for highly efficient and long lasting RNA interference effect
title_short RNA–DNA hybrid nano-materials for highly efficient and long lasting RNA interference effect
title_sort rna–dna hybrid nano-materials for highly efficient and long lasting rna interference effect
topic Chemistry
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9854246/
https://www.ncbi.nlm.nih.gov/pubmed/36756454
http://dx.doi.org/10.1039/d2ra06249f
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